Essential Dynamics (ED) is a powerful tool for analyzing molecular dynamics (MD) simulations and it is widely adopted for conformational analysis of large molecular systems such as, for example, proteins and nucleic acids. In this study, we extend the use of ED to the study of clusters of arbitrary size constituted by weakly interacting particles, for example, atomic clusters and supramolecular systems. The key feature of the method we present is the identification of the relevant atomic-molecular clusters to be analyzed by ED for extracting the information of interest. The application of this computational approach allows a straightforward and unbiased conformational study of the local microstructures in liquids, as emerged from semiclassical MD simulations. The good performance of the method is demonstrated by calculating typical observables of liquid water, that is, NMR, NEXAFS O1s, and IR spectra, known to be rather sensitive both to the presence and to the conformational features of hydrogen-bonded clusters.

D'Alessando, M., Amadei, A., Stener, M., Aschi, M. (2015). Essential dynamics for the study of microstructures in liquids. JOURNAL OF COMPUTATIONAL CHEMISTRY, 36(6), 399-407 [10.1002/jcc.23814].

Essential dynamics for the study of microstructures in liquids

Amadei A.;
2015-01-01

Abstract

Essential Dynamics (ED) is a powerful tool for analyzing molecular dynamics (MD) simulations and it is widely adopted for conformational analysis of large molecular systems such as, for example, proteins and nucleic acids. In this study, we extend the use of ED to the study of clusters of arbitrary size constituted by weakly interacting particles, for example, atomic clusters and supramolecular systems. The key feature of the method we present is the identification of the relevant atomic-molecular clusters to be analyzed by ED for extracting the information of interest. The application of this computational approach allows a straightforward and unbiased conformational study of the local microstructures in liquids, as emerged from semiclassical MD simulations. The good performance of the method is demonstrated by calculating typical observables of liquid water, that is, NMR, NEXAFS O1s, and IR spectra, known to be rather sensitive both to the presence and to the conformational features of hydrogen-bonded clusters.
2015
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore CHIM/02 - CHIMICA FISICA
English
clusters; computational spectroscopy; conformational sampling; essential dynamics; molecular dynamics; Hydrogen Bonding; Magnetic Resonance Spectroscopy; Molecular Conformation; Principal Component Analysis; Quantum Theory; Spectrophotometry, Infrared; Thermodynamics; Water; Molecular Dynamics Simulation
D'Alessando, M., Amadei, A., Stener, M., Aschi, M. (2015). Essential dynamics for the study of microstructures in liquids. JOURNAL OF COMPUTATIONAL CHEMISTRY, 36(6), 399-407 [10.1002/jcc.23814].
D'Alessando, M; Amadei, A; Stener, M; Aschi, M
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/243536
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